Tunable superconductivity in electron- and hole-doped Bernal bilayer graphene

IF 50.5 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Nature Pub Date : 2024-06-19 DOI:10.1038/s41586-024-07584-w
Chushan Li, Fan Xu, Bohao Li, Jiayi Li, Guoan Li, Kenji Watanabe, Takashi Taniguchi, Bingbing Tong, Jie Shen, Li Lu, Jinfeng Jia, Fengcheng Wu, Xiaoxue Liu, Tingxin Li
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Abstract

Graphene-based, high-quality, two-dimensional electronic systems have emerged as a highly tunable platform for studying superconductivity1–21. Specifically, superconductivity has been observed in both electron- and hole-doped twisted graphene moiré systems1–17, whereas in crystalline graphene systems, superconductivity has so far been observed only in hole-doped rhombohedral trilayer graphene (RTG)18 and hole-doped Bernal bilayer graphene (BBG)19–21. Recently, enhanced superconductivity has been demonstrated20,21 in BBG because of the proximity to a monolayer WSe2. Here we report the observation of superconductivity and a series of flavour-symmetry-breaking phases in electron- and hole-doped BBG/WSe2 devices by electrostatic doping. The strength of the observed superconductivity is tunable by applied vertical electric fields. The maximum Berezinskii–Kosterlitz−Thouless transition temperature for the electron- and hole-doped superconductivity is about 210 mK and 400 mK, respectively. Superconductivities emerge only when the applied electric fields drive the BBG electron or hole wavefunctions towards the WSe2 layer, underscoring the importance of the WSe2 layer in the observed superconductivity. The hole-doped superconductivity violates the Pauli paramagnetic limit, consistent with an Ising-like superconductor. By contrast, the electron-doped superconductivity obeys the Pauli limit, although the proximity-induced Ising spin–orbit coupling is also notable in the conduction band. Our findings highlight the rich physics associated with the conduction band in BBG, paving the way for further studies into the superconducting mechanisms of crystalline graphene and the development of superconductor devices based on BBG. Tunable superconductivity and a series of flavour-symmetry-breaking phases are observed in electron- and hole-doped Bernal bilayer graphene.

Abstract Image

Abstract Image

电子和空穴掺杂的贝纳尔双层石墨烯中的可调谐超导性。
基于石墨烯的高质量二维电子系统已成为研究超导性的高度可调平台1-21。具体来说,在电子和空穴掺杂的扭曲石墨烯摩尔体系中都观察到了超导现象1-17,而在晶体石墨烯体系中,迄今为止只在空穴掺杂的斜方三层石墨烯(RTG)18 和空穴掺杂的贝纳尔双层石墨烯(BBG)19-21 中观察到了超导现象。最近,由于靠近单层 WSe2,BBG 的超导性得到了增强20,21。在此,我们报告了通过静电掺杂在电子和空穴掺杂的 BBG/WSe2 器件中观察到的超导性和一系列味道对称性破坏相。观察到的超导电性的强度可通过施加垂直电场进行调节。电子掺杂和空穴掺杂超导的最大别列津斯基-科斯特利兹-无穷大转变温度分别约为 210 mK 和 400 mK。只有当外加电场将 BBG 电子或空穴波函数驱向 WSe2 层时,超导性才会出现,这凸显了 WSe2 层在观察到的超导性中的重要性。掺杂空穴的超导违反了保利顺磁极限,与类伊辛超导体一致。相比之下,电子掺杂的超导电性遵守了保利极限,尽管在导带中也明显存在近似诱导的伊辛自旋轨道耦合。我们的发现凸显了 BBG 中与传导带相关的丰富物理现象,为进一步研究晶体石墨烯的超导机制和开发基于 BBG 的超导体设备铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nature
Nature 综合性期刊-综合性期刊
CiteScore
90.00
自引率
1.20%
发文量
3652
审稿时长
3 months
期刊介绍: Nature is a prestigious international journal that publishes peer-reviewed research in various scientific and technological fields. The selection of articles is based on criteria such as originality, importance, interdisciplinary relevance, timeliness, accessibility, elegance, and surprising conclusions. In addition to showcasing significant scientific advances, Nature delivers rapid, authoritative, insightful news, and interpretation of current and upcoming trends impacting science, scientists, and the broader public. The journal serves a dual purpose: firstly, to promptly share noteworthy scientific advances and foster discussions among scientists, and secondly, to ensure the swift dissemination of scientific results globally, emphasizing their significance for knowledge, culture, and daily life.
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